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Co 2 P@N,P-Codoped Carbon Nanofiber as a Free-Standing Air Electrode for Zn–Air Batteries: Synergy Effects of CoN x Satellite Shells

作者:Jingchang Gao, Jinming Wang, Lijun Zhou, Xiaoyi Cai, Da Zhan, Mingzhen Hou, Linfei Lai · 发表于:ACS Applied Materials & Interfaces · 年份:2019 · DOI:10.1021/acsami.8b20003 · 被引用次数:94 · 研究领域:Electrocatalysts for Energy Conversion、Advanced battery technologies research、Supercapacitor Materials and Fabrication

Here, a free-standing electrode composed of cobalt phosphides (Co 2 P) supported by cobalt nitride moieties (CoN x ) and an N,P-codoped porous carbon nanofiber (CNF) in one-step electrospinning of environmentally friendly benign phosphorous precursors is reported. Physiochemical characterization revealed the symbiotic relationship between a Co 2 P crystal and surrounding nanometer-sized CoN x moieties embedded in an N,P-codoped porous carbon matrix. Co 2 P@CNF shows high oxygen reduction reaction and oxygen evolution reaction performance owing to the synergistic effect of Co 2 P nanocrystals and the neighboring CoN x moieties, which have the optimum binding strength of reactants and facilitate the mass transfer. The free-standing Co 2 P@CNF air-cathode-based Zn–air batteries deliver a power density of 121 mW cm –2 at a voltage of 0.76 V. The overall overpotential of Co 2 P@CNF-based Zn–air batteries can be significantly reduced, with low discharge–charge voltage gap (0.81 V at 10 mA cm –2 ) and high cycling stability, which outperform the benchmark Pt/C-based Zn–air batteries. The one-step electrospinning method can serve as a universal platform to develop other high-performance transition-metal phosphide catalysts benefitting from the synergy effect of transition nitride satellite shells. The free-standing and flexible properties of Co 2 P@CNF make it a potential candidate for wearable electronic devices.